IP Library Granted Patent US 10,686,636
Granted Patent B2
US 10,686,636 · App. 15/881,440 · Granted Jun 16, 2020

Restricted euclidean modulation

Inventors: Patrick Bowen (Wake Forest, NC); Nathan Kundtz (Redmond, WA)
Assignee: KYMETA CORPORATION
H04L27/18H01Q13/103H04B7/10H01Q1/38
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,686,636
App. No.
15/881,440
Granted
Jun 16, 2020
Kind
B2
Abstract

A method and apparatus for using Euclidean modulation in an antenna are disclosed. In one embodiment, a method for controlling an antenna comprises mapping a desired modulation to achievable modulation states, mapping modulation values associated with the achievable modulation states to one or more control parameters, and controlling radio frequency (RF) radiating antenna elements using the one or more control parameters to perform beam forming.

Claims (46)

1. A method for controlling an antenna having antenna elements, the method comprising:

mapping a desired modulation to achievable modulation states based on Euclidean distance between required and achievable polarizabilities, including mapping a modulation state to voltages applied to the antenna elements, wherein each achievable modulation state corresponds to voltages applied to the antenna elements of the antenna to induce magnetic dipole moments with achievable polarizabilities;

mapping modulation values associated with the achievable modulation states to one or more control parameters; and

controlling radio frequency (RF) radiating antenna elements using the one or more control parameters to perform beam forming.

2. The method defined in claim 1 wherein mapping the desired modulation to achievable modulation states is based on Euclidean distance.

3. The method defined in claim 1 wherein the one or more control parameters comprise a voltage to be applied to each of the RF radiating antenna elements.

4. The method defined in claim 1 wherein the RF radiating antenna elements comprise tunable elements in a metasurface and mapping the desired modulation to achievable modulation states comprises approximating a set of required polarizabilities with a set of the tunable elements in the metasurface.

5. The method defined in claim 1 wherein mapping the desired modulation to achievable modulation states comprises selecting points out of achievable polarizabilities that approximate required polarizabilities of the desired modulation.

6. The method defined in claim 5 wherein selecting points out of a set of achievable polarizabilities that approximate required polarizabilities of the desired modulation comprises minimizing distance between the required and achievable polarizabilities.

7. The method defined in claim 6 wherein minimizing distance between the required and achievable polarizabilities comprises minimizing a Euclidean norm between the required and achievable polarizabilities.

8. A method for controlling an antenna having antenna elements, the method comprising:

mapping a desired modulation to achievable modulation states, including mapping a modulation state to voltages applied to the antenna elements, wherein each achievable modulation state corresponds to voltages applied to the antenna elements of the antenna to induce magnetic dipole moments with achievable polarizabilities, wherein mapping the desired modulation to achievable modulation states comprises

choosing a mapping between ideal polarizabilities and the range of possible polarizabilities that excludes any polarizability out of a range of possible polarizabilities that has an imaginary part that is greater than a set level; and

applying a euclidean modulation scheme to identify a polarizability out of a group of remaining possible polarizabilities that is nearest in a complex plane to a required polarizability;

mapping modulation values associated with the achievable modulation states to one or more control parameters; and

controlling radio frequency (RF) radiating antenna elements using the one or more control parameters to perform beam forming.

9. The method defined in claim 1 wherein mapping the desired modulation to achievable modulation states comprises:

for each metamaterial element in a waveguide, computing an ideal polarizability;

finding a required average polarizability distribution required in order to obtain an even aperture for the metamaterial elements;

finding a range of polarizabilities available for the metamaterial elements given a tuning range of the elements;

finding an average imaginary polarizability as a function of a maximum allowed imaginary polarizability;

for each metamaterial element, finding a maximum allowed imaginary polarizability that is required in order to obtain an even aperture;

for each element, removing from its range of available polarizabilities any points that have a larger imaginary polarizability than the maximum allowed imaginary polarizability;

for each element, finding a point on a remaining range of available polarizabilities that is a shortest distance in a complex plane from the ideal polarizability; and

tune each element to operates with a selected polarizability.

10. A method for controlling an antenna having antenna elements, the method comprising:

mapping a desired modulation to achievable modulation states, including mapping a modulation state to voltages applied to the antenna elements, wherein each achievable modulation state corresponds to voltages applied to the antenna elements of the antenna to induce magnetic dipole moments with achievable polarizabilities;

mapping modulation values associated with the achievable modulation states to one or more control parameters;

controlling radio frequency (RF) radiating antenna elements using the one or more control parameters to perform beam forming; and

tuning antenna elements such that coupling of the antenna elements increases down the length of a waveguide and magnitude of a dipole moment of all the antenna elements is constant across a surface of the antenna.

11. The method defined in claim 10 further comprising obtaining the desired modulation.

12. The method defined in claim 11 wherein the desired modulation is based on location of at least a subset of the RF radiating antenna elements.

13. The method defined in claim 12 wherein the desired modulation is based on beam pointing direction and polarization.

14. The method defined in claim 13 wherein the desired modulation is based on wave propagation in a feed of the antenna.

15. An antenna comprising:

a metasurface having a plurality of RF radiating antenna elements;

a controller coupled to the metasurface and having modulation logic to map a desired modulation to achievable modulation states based on Euclidean distance between required and achievable polarizabilities and map modulation values associated with the achievable modulation states to one or more control parameters, the modulation logic operable to map a modulation state to voltages applied to the antenna elements, wherein each achievable modulation state corresponds to voltages applied to the antenna elements of the antenna to induce magnetic dipole moments with achievable polarizabilities; and

drive circuitry coupled to the metasurface and the controller to control the RF radiating antenna elements using the one or more control parameters to perform beam forming.

16. The antenna defined in claim 15 wherein the modulation logic is operable to map a desired modulation to achievable modulation states based on Euclidean distance.

17. The antenna defined in claim 15 wherein the one or more control parameters comprise a voltage to be applied to each of the RF radiating antenna elements.

18. The antenna defined in claim 15 wherein the RF radiating antenna elements comprise tunable elements and the modulation logic is operable to map the desired modulation to achievable modulation states by approximating a set of required polarizabilities with a set of the tunable elements in the metasurface.

19. The antenna defined in claim 15 wherein the modulation logic is operable to map the desired modulation to achievable modulation states by selecting points out of achievable polarizabilities that approximate required polarizabilities of the desired modulation.

20. The antenna defined in claim 19 wherein the modulation logic is operable to select points out of a set of achievable polarizabilities that approximate required polarizabilities of the desired modulation by minimizing distance between the required and achievable polarizabilities.

21. The antenna defined in claim 20 wherein the modulation logic is operable to minimize distance between the required and achievable polarizabilities by minimizing a Euclidean norm between the required and achievable polarizabilities.

22. The antenna defined in claim 15 wherein the desired modulation is based on location of at least a subset of the RF radiating antenna elements, beam pointing direction, and polarization.

23. The antenna defined in claim 22 wherein the desired modulation is based on wave propagation in a feed of the antenna.

Assignments (4)
SECURITY INTEREST Recorded Feb 7, 2025
From: KYMETA CORPORATION
To: GATES FRONTIER, LLC
Reel/Frame 070154/0001 →
SECURITY INTEREST Recorded Jul 11, 2024
From: KYMETA CORPORATION
To: TRINITY CAPITAL INC.
Reel/Frame 068276/0105 →
SECURITY INTEREST Recorded Apr 12, 2024
From: KYMETA CORPORATION
To: GATES FRONTIER, LLC
Reel/Frame 067095/0862 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 23, 2019
From: BOWEN, PATRICK; KUNDTZ, NATHAN; SAZEGAR, MOHSEN
To: KYMETA CORPORATION
Reel/Frame 050464/0447 →
Continuity (1)
Related Publication 20190238375A1 · Aug 1, 2019
Cited By (1)
US 12,414,098